Segmented articulatable stent of open structure comprised of end-connected struts of first and second lengths making up first and second segments with angular interconnects between adjacent first and second segments.
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1. A stent comprising: a stent body expandable between an un-deployed orientation and a deployed orientation, the stent body having a longitudinal axis extending between first and second open ends; the stent body having a plurality of adjacent closed circumferential support structures, the closed circumferential support structures being spaced-apart along the longitudinal axis; each support structure including longitudinal struts interconnected at apex portions, the longitudinal struts and apex portions defining an undulating pattern, at least some of the apex portions of adjacent closed circumferential support structures being configured to longitudinally overlap one another when in the un-deployed configuration; a plurality of connecting struts interconnecting at least some of the adjacent closed circumferential support structures, the connecting struts extending between and connected to the apex portions that overlap one another.
5. A stent comprising: a stent body expandable between an un-deployed orientation and a deployed orientation, the stent body having a circumference and a longitudinal axis extending between first and second open ends; the stent body having a plurality of circumferential support structures, which extend generally about the circumference of the stent, the circumferential support structures being spaced-apart along the longitudinal axis; each of the circumferential support structures including longitudinal struts interconnected at apex portions, the longitudinal struts and apex portions defining an undulating pattern, at least some of the apex portions of adjacent circumferential support structures being configured to longitudinally extend past each other when in the un-deployed configuration thus providing longitudinal overlap; a plurality of circumferential connecting struts interconnecting at least some of the adjacent circumferential support structures, the circumferential connecting struts extending between and connected to the apex portions that extend past each other.
2. The stent of
3. The stent of
4. The stent of
6. The stent of
7. The stent of
8. The stent of
9. The stent of
10. The stent of
11. The stent of
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This application is a Continuation Application of U.S. application Ser. No. 09/197,278, filed Nov. 20, 1998, which is a Continuation-in-Part of application Ser. No. 08/511,076, filed Aug. 3, 1995, which is a Continuation-in-Part Application of U.S. application Ser. No. 08/396,569, filed Mar. 1, 1995 and now abandoned, the disclosure of all hereby incorporated by reference.
This invention relates to an endoprosthesis device for implantation within a body vessel, typically a blood vessel. More specifically, it relates to a tubular expandable stent of improved longitudinal flexibility.
Stents are placed or implanted within a blood vessel for treating stenoses, strictures or aneurysms therein. They are implanted to reinforce collapsing, partially occluded, weakened, or dilated sections of a blood vessel. They have also been implanted in the urinary tract and in bile ducts.
Typically, a stent will have an unexpanded (closed) diameter for placement and an expanded (opened) diameter after placement in the vessel or the duct. Some stents are self-expanding and some are expanded mechanically with radial outward force from within the stent, as by inflation of a balloon.
An example of the latter type is shown in U.S. Pat. No. 4,733,665 to Palmaz, which issued Mar. 29, 1988, and discloses a number of stent configurations for implantation with the aid of a catheter. The catheter includes an arrangement wherein a balloon inside the stent is inflated to expand the stent by plastically deforming it, after positioning it within a blood vessel.
A type of self-expanding stent is described in U.S. Pat. No. 4,503,569 to Dotter which issued Mar. 12, 1985, and discloses a shape memory stent which expands to an implanted configuration with a change in temperature. Other types of self-expanding stents not made of shape memory material are also known.
This invention is directed to stents of all these types when configured so as to be longitudinally flexible as described in detail hereinbelow. Flexibility is a desirable feature in a stent so as to conform to bends in a vessel. Such stents are known in the prior art. Examples are shown in U.S. Pat. No. 4,856,516 to Hillstead; U.S. Pat. No. 5,104,404 to Wolff; U.S. Pat. No. 4,994,071 to MacGregor; U.S. Pat. No. 5,102,417 to Palmaz; U.S. Pat. No. 5,195,984 to Schatz; U.S. Pat. No. 5,135,536 to Hillstead; U.S. Pat. No. 5,354,309 to Shepp-Pesch et al.; EPO Patent Application 0 540 290 A2 to Lau; EPO Patent Application No. 0 364 787 B1 to Schatz, and PCT Application WO 94/17754 (also identified as German Patent Application 43 03 181).
Generally speaking, these kinds of stents are articulated and are usually formed of a plurality of aligned, expandable, relatively inflexible, circular segments which are interconnected by flexible elements to form a generally tubular body which is capable of a degree of articulation or bending. Unfortunately, a problem with such stents is that binding, overlapping or interference can occur between adjacent segments on the inside of a bend due to the segments moving toward each other and into contact or on the outside of a bend the segments can move away from each other, leaving large gaps. This can lead to improper vessel support, vessel trauma, flow disturbance, kinking, balloon burst during expansion, and difficult recross for devices to be installed through already implanted devices and to unsupported regions of vessel.
A diamond configuration with diagonal connections between each and every diamond of each segment is also known but such closed configurations lack flexibility.
It is an object of this invention to provide a longitudinally flexible stent of open configuration that avoids these problems and exhibits improved flexibility (radially and longitudinally) in the stent body segments thereof rather than in flexible joints between the segments.
It is a further object of the present invention to provide a stent that is flexible yet also allows for side branch access.
It is a goal of the present invention to provide a flexible stent formed of interconnected bands which provides for side branch access and which further avoids the problem of pinching or overlap between adjacent bands. Pinching or overlap is avoided where peaks and troughs of adjacent bands are circumferentially displaced relative to each other. The stents of the present invention accomplish this goal by having different bands characterized by different wavelengths over the length of the stent and/or disposing the interconnecting members in such a way that after expansion of the stent, the phase relationship between adjacent bands is altered with the peaks and troughs displaced circumferentially relative to each other.
The inventive expandable stents are formed of a plurality of interconnected band-like elements characterized by alternating peaks and troughs. The ends of the interconnecting members which join adjacent bands are circumferentially offset and optionally, longitudinally offset. Peaks and troughs in adjacent bands are circumferentially offset as well so that the stent, in an expanded state, will have minimal overlap of peaks and troughs.
To this end, the invention provides a tubular, flexible, expandable stent, comprising a plurality of undulating band-like elements of a selected wavelength or wavelengths. The band-like elements have peaks and troughs and are aligned on a common longitudinal axis to define a generally tubular stent body. The peaks and troughs take a generally longitudinal direction along the stent body. Adjacent band-like elements may be in phase or out of phase with each other. The inventive stents further comprise a plurality of interconnecting elements having first ends and second ends. The first and second ends extend from adjacent band-like elements and are displaced from one another in a longitudinal direction and in a radial direction along the stent. Desirably, upon expansion of the stent, at least some of the peaks and troughs of a given band-like element are displaced relative to each other about the periphery of the stent to accommodate longitudinal flexing of the stent within the band-like elements and without interference between adjacent band-like elements.
In one embodiment, two different types of band-like elements are present in the stent, first band-like elements with a first selected wavelength and second band-like elements with a second selected wavelength exceeding the first selected wavelength. The first and second band-like elements preferably alternate over the length of the stent. Although the terminology of ‘first band-like element’ and ‘second band-like element’ is used, it is not intended to convey the relative order of appearance of the elements in the inventive stents.
In another embodiment, two different types of band-like elements are present, first and second band-like elements, each of which has peaks and troughs. The first band-like elements have more peaks (or troughs) than the second band-like elements. Similarly, the invention is also directed to embodiments having first and second band-like elements with peaks and troughs where the peaks (or troughs) of the first band-like elements are spaced closer together than the peaks (or troughs) of the second band-like elements.
In another embodiment in which band-like elements of only one wavelength are present, adjacent bands are about 180° out of phase with one another. Interconnecting elements extend at an oblique angle relative to the longitudinal axis from a peak to a trough on an adjacent band.
In another embodiment in which band-like elements of only one wavelength are present, peaks from which interconnecting elements emanate are elongated relative to the peaks which are not connected to troughs and similarly, the troughs from which interconnectors emanate are elongated relative to troughs which are not connected to peaks. Further, each interconnecting element extends from the side of a peak to the side of a trough on an adjacent band.
In yet another embodiment in which band-like elements of only one wavelength are present, adjacent bands are about 90° out of phase with one another. Each interconnecting element extends between a peak and a trough and the ends of the interconnecting member are circumferentially offset from one another and, optionally, longitudinally offset.
The invention further provides a tubular, flexible, expandable stent having a longitudinal axis, comprising one or more cylindrical shaped first segments having first struts, the first segment being defined by a member formed in an undulating pattern of interconnected paired first struts and in which adjacent pairs of first struts in a given first segment are interconnected at opposite ends and one or more cylindrical shaped second segments defined by a member formed in an undulating pattern of interconnected paired second struts and in which adjacent pairs of second struts in a given second segment are interconnected at opposite ends. The first struts are shorter than the second struts. The first segments are formed of a number of first struts and the second segments are formed of a number of second struts with the number of first struts in a first segment exceeding the number of second struts in a second segment. The first and second segments, present and desirably alternating along the stent body, are aligned on a common longitudinal axis to define a generally tubular stent body. Adjacent first and second segments are connected by a plurality of interconnecting elements, each interconnecting element extending from an end of paired first struts on a first segment to an end of paired second struts on an adjacent second segment. The ends of interconnecting elements are circumferentially offset relative to each other, and optionally, longitudinally offset. Desirably, upon expansion of the stent, the paired struts of the adjacent segments are displaced relative to each other about the periphery of the stent body to accommodate longitudinal flexing of the stent within the segments and without interference between adjacent segments.
While this invention may be embodied in many different forms, there are described in detail herein specific preferred embodiments of the invention. This description is an exemplification of the principles of the invention and is not intended to limit the invention to the particular embodiments illustrated.
For the sake of consistency, the terms ‘peak’ and ‘trough’ shall be defined with respect to the proximal and distal ends of the stent. Each of the stents has a proximal end 91 and a distal end 93 and a longitudinal axis 95, as seen in
Corresponding to each peak 36 is an inner diameter peak 38 where the inner diameter of the band-like element reaches its peak. The set of points on a given band-like element which are distal to inner diameter peak 38 is denoted peak region 48. Similarly, corresponding to each trough 40 is an inner diameter trough 42 where the inner diameter of the band-like element reaches its trough. The set of points on a given band-like element which are proximal to inner diameter trough 42 is denoted trough region 52. For the sake of clarity, unless otherwise indicated, analogous portions of stents will be similarly labeled, using three digit reference numerals to distinguish among the various embodiments shown.
Also included within this definition of peak regions and trough regions are peak regions which are comprised of multiple peaks as well as trough regions which are comprised of multiple troughs such as those shown schematically in
The inventive stents may incorporate one or more bands of a chosen wavelength. In some embodiments, the inventive stents include one or more small amplitude, short wavelength bands to provide for flexibility and one or more large amplitude, long wavelength bands to give side branch access or to provide for sections of alternative strengths such as soft and/or stiff sections.
Turning to the Figures,
A more preferred method of manufacture begins with a thin walled tube which is then laser cut to provide the desired configuration. It may also be chemically etched or EDM'd (electrical discharge machined) to form an appropriate configuration.
The configuration can be seen in these Figures to be made up of one or more spaced first band-like elements 120. First band-like elements have a generally serpentine configuration to provide continuous waves to the first band-like elements. The waves are characterized by a plurality of peaks 124 and troughs 128 taking a generally longitudinal direction along the cylinder such that the waves in first band-like elements 120 open as the stent is expanded from an unexpanded state having a first diameter to an expanded state having a second diameter.
The stent further comprises a plurality of spaced second band-like elements 132 having a generally serpentine configuration to provide continuous waves to the second band-like elements. The waves are characterized by a plurality of peaks 136 and troughs 140 taking a generally longitudinal direction along the cylinder such that the waves in the second band-like elements open as the stent is expanded from an unexpanded state having a first diameter to an expanded state having a second diameter. First and second band-like elements are characterized by respective wavelengths and amplitudes with the wavelength and amplitude of the second band-like elements exceeding the wavelength and amplitude of the first band-like elements.
Adjacent first band-like elements 120 and second band-like elements 132 are interconnected via a plurality of interconnecting elements 144. The ends of interconnecting element are circumferentially offset from each other.
In an embodiment, as shown in
While a minimum of one connecting element is required to join adjacent band-like elements, two or more interconnecting elements are preferred. In one embodiment, as shown in
It is a further feature of the present invention that peaks 124 on first band-like elements 120 are circumferentially displaced on the periphery of the stent from troughs 140 on adjacent second band-like elements 132. It is desirable that peaks and troughs be displaced in the expanded state of the stent to minimize the possibility of pinching or overlap between adjacent band-like elements.
Although the stent of
In another embodiment, the inventive stent is comprised of band-like elements of a single wavelength, interconnected by interconnecting elements. Turning to
In the embodiment shown in
In the embodiment shown in
In both
In another embodiment, as shown in
In another embodiment, as shown in
In another embodiment, as shown in
In
Although for the embodiments of
In the embodiment of
The embodiment of
This feature is also seen in the embodiment of
Although in the embodiments of
In the embodiment of
In another embodiment of the invention, as shown in
It is also noted that in the embodiment of
It is further noted in the embodiment of
In another embodiment of the invention, as shown in
The invention also contemplates stents similar to that shown in
Further, the interconnecting elements between any two adjacent band-like elements may be of different lengths from one another and disposed at different oblique angles.
As is apparent from
It is also noted that in the embodiment of
The invention is also directed to a tubular, flexible, expandable stent having a longitudinal axis, comprising one or more cylindrical shaped first segments. Cylindrical shaped first segments 20 as seen in
The stent may be seen more clearly in
Desirably, upon expansion of stent 115, paired struts 129″ and 137″ of adjacent segments 120 and 132 are displaced relative to each other about the periphery of the stent body to accommodate longitudinal flexing of the stent within the segments and without interference between adjacent segments.
In the embodiments as shown in
Similar structure, denoted by similar reference numerals may be found in the stents of
In particular, in the embodiment as shown in
Additional embodiment of the stents are shown in
The configuration can be seen in these Figures to be made up of a plurality of adjacent segments generally indicated at 1116, each of which is formed in an undulating flexible pattern of substantially parallel struts 1118. Pairs of struts are interconnected at alternating end portions 1119a and 1119b. As is seen in
A more preferred method of manufacture begins with a thin walled tube which is then laser cut to provide the desired configuration. It may also be chemically etched or EDM'd (electrical discharge machined) to form an appropriate configuration.
Interconnecting elements 1120 extend from one end portion 1119 of one segment 1116 to another end portion 1119 of another adjacent segment 1116 but not to an oppositely positioned end portion 1119 of an adjacent segment 1116. There are at least three struts included between the points on each side of a segment 1116 at which an interconnecting element 1120 contacts an end portion 1119. This results in the interconnecting elements 1120 extending in an angular direction between segments around the periphery of the tubular stent. Interconnecting elements 1120 are preferably of the same length but may vary from one segment to the other. Also, the diagonal direction may reverse from one segment to another extending upwardly in one case and downwardly in another, although all connecting elements between any pair of segments are substantially parallel.
As a result of this angular extension of the interconnecting elements 1120 between adjacent segments and loops, upon expansion of the stent as seen in
The number of interconnecting elements 1120 may vary depending on circumstances in any particular instance. Three per segment are satisfactory for the configuration shown and at least three will be used typically.
The alternate design shown in
As indicated in the Figures, the invention contemplates a variation of interconnecting element shapes ranging from rectilinear to curvilinear. The invention further contemplates embodiments in which all interconnecting elements are similarly oriented as well as embodiments in which adjacent sets of interconnecting elements extending between adjacent pairs of segments are oppositely oriented (e.g.,
The invention also contemplates the possibility of interconnecting elements extending at an oblique angle relative to the longitudinal axis of the stent and connecting adjacent peaks and troughs on adjacent segments as well as peaks and troughs on adjacent segments which are separated by one or more peaks and/or troughs.
The invention also contemplates reversing the orientation of interconnecting elements as shown in
Finally, there are preferably at least three interconnecting elements joining adjacent first and second segments although fewer or additional interconnecting elements are also contemplated.
It is understood that the peaks and troughs of the present invention need not be rounded, as shown in the Figures. The peaks and troughs may be bulbous, triangular, square, pointed, or otherwise formed of interconnected straight sections.
As already indicated, this invention is applicable to self-expanding configurations, mechanically expandable configurations and to a wide variety of materials, including both metal and plastic and any other material capable of functioning as an expandable stent. For example, the stent may be of metal wire or ribbon such as tantalum, stainless steel or the like. It may be thin-walled. It may be of shape memory alloy such as Nitinol or the like, etc. The interconnecting elements may be formed integrally with the band-like elements (or segments) or may be bonded thereto via such methods as adhesive bonding, welding or any other known method of bonding.
The above Examples and disclosure are intended to be illustrative and not exhaustive. These examples and this description will suggest many variations and alternatives to one of ordinary skill in this art. All these alternatives and variations are intended to be included within the scope of the attached claims. Those familiar with the art may recognize other equivalents to the specific embodiments described herein which equivalents are also intended to be encompassed by the claims attached hereto.
Davis, Michael, Ley, Timothy J., Skubitz, Sean P., Brown, Brian J., Friesen, David
Patent | Priority | Assignee | Title |
8241349, | Jun 05 1998 | Boston Scientific Scimed, Inc. | Extendible stent apparatus |
9707111, | Sep 17 2001 | Covidien LP | Stent with offset cell geometry |
Patent | Priority | Assignee | Title |
2836181, | |||
3105492, | |||
3272204, | |||
3490975, | |||
3509883, | |||
3526228, | |||
3562820, | |||
3635215, | |||
3657744, | |||
3771526, | |||
3868956, | |||
3993078, | Nov 04 1974 | Gambro AG | Insert for use preferably in vascular surgery |
4078167, | Feb 09 1977 | United Technologies Corporation | Welding shield and plasma suppressor apparatus |
4127761, | Oct 25 1976 | The Welding Institute | Laser welding |
4130904, | Jun 06 1977 | Thermo Electron Corporation | Prosthetic blood conduit |
4140126, | Feb 18 1977 | HARRISON MEDICAL TECHNOLOGIES, INC | Method for performing aneurysm repair |
4141364, | Mar 18 1977 | Expandable endotracheal or urethral tube | |
4164045, | Aug 03 1977 | CarboMedics, Inc. | Artificial vascular and patch grafts |
4214587, | Feb 12 1979 | LifeShield Sciences LLC | Anastomosis device and method |
4300244, | Sep 19 1979 | CarboMedics, Inc. | Cardiovascular grafts |
4313231, | Jun 16 1980 | Kabushiki Kaisha Tatebe Seishudo | Vascular prosthesis |
4319363, | May 23 1978 | WILKRACHT PTY LTD | Vascular prostheses |
4425908, | Oct 22 1981 | NITINOL MEDICAL TECHNOLGIES, INC , 7779 WILLOW GLEN ROAD, LOS ANGELES, CA 90046, A DE CORP | Blood clot filter |
4441215, | Nov 17 1980 | AORTECH, INC , A CORP OF MN | Vascular graft |
4470407, | Mar 11 1982 | Laserscope, Inc. | Endoscopic device |
4501264, | Jun 02 1978 | ROCKEY, ELAINE D , INDIVIDUALLY; ROCKEY, ARLAINE I ; COLLIAS, GINA ROCKEY; ARLAINE & GINA ROCKEY, INC | Medical sleeve |
4503569, | Mar 03 1983 | Cook Incorporated | Transluminally placed expandable graft prosthesis |
4512338, | Jan 25 1983 | World Medical Manufacturing Corporation | Process for restoring patency to body vessels |
4535770, | Nov 02 1983 | Cardiovascular tourniquet | |
4550447, | Aug 03 1983 | SORIN BIOMEDICAL INC | Vascular graft prosthesis |
4553545, | Sep 16 1981 | AMS MEDINVENT S A | Device for application in blood vessels or other difficultly accessible locations and its use |
4560374, | Oct 17 1983 | Method for repairing stenotic vessels | |
4580568, | Oct 01 1984 | Cook, Incorporated | Percutaneous endovascular stent and method for insertion thereof |
4597389, | Sep 30 1982 | Device for removing objects from tubular body passages | |
4647416, | Aug 03 1983 | SORIN BIOMEDICAL INC | Method of preparing a vascular graft prosthesis |
4649922, | Jan 23 1986 | Catheter arrangement having a variable diameter tip and spring prosthesis | |
4655771, | Apr 30 1982 | AMS MEDINVENT S A | Prosthesis comprising an expansible or contractile tubular body |
4655776, | Jan 12 1984 | Oto Enterprises, Inc. | Prostheses for ossicular reconstruction |
4665918, | Jan 06 1986 | Endotex Interventional Systems, Inc | Prosthesis system and method |
4681110, | Dec 02 1985 | Medtronic, Inc | Catheter arrangement having a blood vessel liner, and method of using it |
4693721, | Oct 17 1984 | Porous flexible metal fiber material for surgical implantation | |
4733665, | Nov 07 1985 | Cordis Corporation | Expandable intraluminal graft, and method and apparatus for implanting an expandable intraluminal graft |
4739762, | Nov 07 1985 | Cordis Corporation | Expandable intraluminal graft, and method and apparatus for implanting an expandable intraluminal graft |
4740207, | Sep 10 1986 | Intralumenal graft | |
4760849, | Apr 10 1985 | AMS MEDINVENT S A | Planar blank and a coil spring manufactured therefrom |
4762128, | Dec 09 1986 | Boston Scientific Scimed, Inc | Method and apparatus for treating hypertrophy of the prostate gland |
4768507, | Feb 14 1986 | MedInnovations, Inc. | Intravascular stent and percutaneous insertion catheter system for the dilation of an arterial stenosis and the prevention of arterial restenosis |
4769029, | Jun 19 1987 | Prosthetic graft for arterial system repair | |
4771773, | Jun 10 1985 | AMS MEDINVENT S A | Insertion device |
4776337, | Nov 07 1985 | Cordis Corporation | Expandable intraluminal graft, and method and apparatus for implanting an expandable intraluminal graft |
4787899, | Dec 09 1983 | LIFEPORT SCIENCES LLC | Intraluminal graft device, system and method |
4795458, | Jul 02 1987 | Stent for use following balloon angioplasty | |
4795465, | May 14 1987 | SOUTH SHORE BANK, A TRUST COMPANY OF MA | Tracheobronchial stent |
4800882, | Mar 13 1987 | Cook Incorporated | Endovascular stent and delivery system |
4820298, | Nov 20 1987 | DEVICE DEVELOPMENTS, INC | Internal vascular prosthesis |
4830003, | Jun 17 1988 | Medtronic Ave, Inc | Compressive stent and delivery system |
4842575, | Jan 30 1984 | Maquet Cardiovascular, LLC | Method for forming impregnated synthetic vascular grafts |
4848343, | Oct 31 1986 | AMS MEDINVENT S A | Device for transluminal implantation |
4851009, | Dec 16 1985 | LifeShield Sciences LLC | Crack prevention of implanted prostheses |
4856516, | Jan 09 1989 | Cordis Corporation | Endovascular stent apparatus and method |
4872874, | May 29 1987 | WORLD MEDICAL MANUFACTURING CORP | Method and apparatus for transarterial aortic graft insertion and implantation |
4877030, | Feb 02 1988 | Device for the widening of blood vessels | |
4878906, | Mar 25 1986 | Servetus Partnership | Endoprosthesis for repairing a damaged vessel |
4886062, | Oct 19 1987 | Medtronic, Inc. | Intravascular radially expandable stent and method of implant |
4913141, | Oct 25 1988 | Cordis Corporation | Apparatus and method for placement of a stent within a subject vessel |
4922905, | May 28 1987 | Boston Scientific Corporation | Dilatation catheter |
4950227, | Nov 07 1988 | Boston Scientific Scimed, Inc | Stent delivery system |
4950258, | Jan 28 1988 | JMS CO , LTD | Plastic molded articles with shape memory property |
4994071, | May 22 1989 | Cordis Corporation | Bifurcating stent apparatus and method |
5015253, | Jun 15 1989 | Cordis Corporation | Non-woven endoprosthesis |
5019090, | Sep 01 1988 | Corvita Corporation | Radially expandable endoprosthesis and the like |
5035706, | Oct 17 1989 | Cook Incorporated | Percutaneous stent and method for retrieval thereof |
5037392, | Jun 06 1989 | Cordis Corporation | Stent-implanting balloon assembly |
5059211, | Jun 25 1987 | Duke University | Absorbable vascular stent |
5064435, | Jun 28 1990 | SciMed Life Systems, INC; Boston Scientific Scimed, Inc | Self-expanding prosthesis having stable axial length |
5091211, | Aug 17 1989 | Lord Corporation | Coating method utilizing phosphoric acid esters |
5092877, | Sep 01 1988 | Corvita Corporation | Radially expandable endoprosthesis |
5102417, | Nov 07 1985 | Cordis Corporation | Expandable intraluminal graft, and method and apparatus for implanting an expandable intraluminal graft |
5104399, | Dec 09 1983 | LIFEPORT SCIENCES LLC | Artificial graft and implantation method |
5104404, | Oct 02 1990 | Medtronic, Inc. | Articulated stent |
5108415, | Oct 04 1988 | Cordis Corporation | Balloons for medical devices and fabrication thereof |
5108417, | Sep 14 1990 | SAWYER, PHILIP N | Anti-turbulent, anti-thrombogenic intravascular stent |
5122154, | Aug 15 1990 | MARITAL DEDUCTION TRUST | Endovascular bypass graft |
5133732, | Mar 22 1989 | Medtronic, Inc. | Intravascular stent |
5135536, | Feb 05 1991 | Cordis Corporation | Endovascular stent and method |
5139480, | Aug 22 1990 | BIOTECH LABORATORIES, INC | Necking stents |
5147385, | Nov 01 1989 | SCHNEIDER EUROPE A G , A CORP OF SWITZERLAND | Stent and catheter for the introduction of the stent |
5147400, | May 10 1989 | United States Surgical Corporation | Connective tissue prosthesis |
5158548, | Apr 25 1990 | Advanced Cardiovascular Systems, Inc. | Method and system for stent delivery |
5163952, | Sep 14 1990 | Expandable polymeric stent with memory and delivery apparatus and method | |
5195984, | Oct 04 1988 | CARDINAL HEALTH SWITZERLAND 515 GMBH | Expandable intraluminal graft |
5197978, | Apr 26 1991 | United States Surgical Corporation | Removable heat-recoverable tissue supporting device |
5217483, | Nov 28 1990 | Numed, Inc. | Intravascular radially expandable stent |
5226913, | Sep 01 1988 | Corvita Corporation | Method of making a radially expandable prosthesis |
5282823, | Mar 19 1992 | Medtronic, Inc.; MEDTRONIC, INC A CORP OF MINNESOTA | Intravascular radially expandable stent |
5282824, | Oct 09 1990 | Cook Medical Technologies LLC | Percutaneous stent assembly |
5292331, | Aug 24 1989 | Medtronic Vascular, Inc | Endovascular support device |
5304200, | May 29 1991 | Cordis Corporation | Welded radially expandable endoprosthesis and the like |
5344425, | Sep 20 1990 | Interface Biomedical Laboratories | Intravascular stent and method for conditioning the surfaces thereof |
5354308, | May 01 1992 | NMT MEDICAL, INC | Metal wire stent |
5354309, | Oct 11 1991 | Angiomed AG | Apparatus for widening a stenosis in a body cavity |
5356423, | Jan 04 1991 | AMS Research Corporation | Resectable self-expanding stent |
5383892, | Nov 08 1991 | MEADOX MEDICALS, INC | Stent for transluminal implantation |
5405377, | Feb 21 1992 | LIFEPORT SCIENCES LLC | Intraluminal stent |
5411552, | May 18 1990 | Edwards Lifesciences AG | Valve prothesis for implantation in the body and a catheter for implanting such valve prothesis |
5449373, | Mar 17 1994 | Medinol Ltd. | Articulated stent |
5591197, | Mar 14 1995 | Advanced Cardiovascular Systems, INC | Expandable stent forming projecting barbs and method for deploying |
5609627, | Feb 09 1994 | LIFEPORT SCIENCES LLC | Method for delivering a bifurcated endoluminal prosthesis |
5649952, | Dec 28 1993 | Advanced Cardiovascular Systems, Inc. | Expandable stents and method for making same |
5697971, | Jun 11 1996 | ISOSTENT INCORPORATED | Multi-cell stent with cells having differing characteristics |
5707386, | Feb 04 1993 | ANGIOMED GMBH & CO MEDIZINTECHNIK KG | Stent and method of making a stent |
5716365, | Feb 09 1994 | LIFEPORT SCIENCES LLC | Bifurcated endoluminal prosthesis |
5716393, | May 26 1994 | ANGIOMED GMBH & CO. MEDIZINTECHNIK KG | Stent with an end of greater diameter than its main body |
5718713, | Apr 10 1997 | Cook Medical Technologies LLC | Surgical stent having a streamlined contour |
5735893, | Dec 09 1993 | Advanced Cardiovascular Systems, Inc. | Expandable stents and method for making same |
5741327, | May 06 1997 | Cook Medical Technologies LLC | Surgical stent featuring radiopaque markers |
5755776, | Oct 04 1996 | Permanent expandable intraluminal tubular stent | |
5755781, | Aug 06 1996 | Vascular Concepts Holdings Limited | Embodiments of multiple interconnected stents |
5776161, | Oct 16 1995 | Medtronic, Inc | Medical stents, apparatus and method for making same |
5776183, | Aug 23 1996 | BOLTON MEDICAL, INC | Expandable stent |
5800520, | Mar 10 1995 | Medtronic Ave, Inc | Tubular endoluminar prosthesis having oblique ends |
5800521, | Nov 09 1994 | LifeShield Sciences LLC | Prosthetic graft and method for aneurysm repair |
5807404, | Sep 19 1996 | MEDINOL LTD | Stent with variable features to optimize support and method of making such stent |
5810872, | Mar 14 1997 | BOLTON MEDICAL, INC | Flexible stent |
5824059, | Aug 05 1997 | Flexible stent | |
5836966, | May 22 1997 | Boston Scientific Scimed, Inc | Variable expansion force stent |
5855597, | May 07 1997 | Vascular Concepts Holdings Limited | Stent valve and stent graft for percutaneous surgery |
5855600, | Aug 01 1997 | Boston Scientific Scimed, Inc | Flexible implantable stent with composite design |
5861025, | Oct 05 1993 | ASSISTANCE PUBLIQUE HOPITAUX DE PARIS | Tubular expandable member for an intraluminal endoprosthesis, intraluminal endoprosthesis, and method of production |
5868780, | Mar 22 1996 | Medtronic Ave, Inc | Stents for supporting lumens in living tissue |
5873906, | Sep 08 1994 | W L GORE & ASSOCIATES, INC | Procedures for introducing stents and stent-grafts |
5876432, | Apr 01 1994 | W L GORE & ASSOCIATES, INC | Self-expandable helical intravascular stent and stent-graft |
5879381, | Mar 10 1996 | Terumo Kabushiki Kaisha | Expandable stent for implanting in a body |
5895407, | Aug 06 1996 | Vascular Concepts Holdings Limited | Microporous covered stents and method of coating |
5911754, | Jul 24 1998 | BOLTON MEDICAL, INC | Flexible stent with effective strut and connector patterns |
5913895, | Jun 02 1997 | CARDINAL HEALTH SWITZERLAND 515 GMBH | Intravascular stent with enhanced rigidity strut members |
5922021, | Apr 26 1996 | Boston Scientific Scimed, Inc | Intravascular stent |
5925061, | Jan 13 1997 | W L GORE & ASSOCIATES, INC | Low profile vascular stent |
5938697, | Mar 04 1998 | Boston Scientific Scimed, Inc | Stent having variable properties |
5948016, | Sep 25 1997 | Boston Scientific Scimed, Inc | Intravascular stent with non-parallel slots |
5954743, | Apr 26 1996 | Boston Scientific Scimed, Inc | Intravascular stent |
6017365, | May 20 1997 | Abbott Laboratories Vascular Enterprises Limited; Abbott Laboratories Vascular Entities Limited | Coronary stent |
6042597, | Oct 23 1998 | Boston Scientific Scimed, Inc | Helical stent design |
6053941, | May 26 1994 | ANGIOMED GMBH & CO. MEDIZINTECHNIK KG | Stent with an end of greater diameter than its main body |
6056775, | May 31 1996 | AVE Galway Limited | Bifurcated endovascular stents and method and apparatus for their placement |
6059822, | Aug 22 1997 | BOLTON MEDICAL, INC | Stent with different mesh patterns |
6068656, | May 15 1997 | Abbott Laboratories Vascular Enterprises Limited; Abbott Laboratories Vascular Entities Limited | Coronary stent |
6106548, | Feb 07 1997 | Endosystems LLC | Non-foreshortening intraluminal prosthesis |
6129755, | Jan 09 1998 | CARDINAL HEALTH SWITZERLAND 515 GMBH | Intravascular stent having an improved strut configuration |
6132460, | Mar 27 1998 | EV3 PERIPHERAL, INC | Stent |
6183506, | Mar 05 1996 | evYsio Medical Devices ULC | Expandable stent and method for delivery of same |
6193747, | Feb 17 1997 | Abbott Laboratories Vascular Enterprises Limited; Abbott Laboratories Vascular Entities Limited | Stent |
6203569, | Jan 04 1996 | Flexible stent | |
6206911, | Dec 19 1996 | Stent combination | |
6231598, | Sep 24 1997 | Cook Medical Technologies LLC | Radially expandable stent |
6261319, | Jul 08 1998 | Boston Scientific Scimed, Inc | Stent |
6340366, | Dec 08 1998 | Stent with nested or overlapping rings | |
6348065, | Mar 01 1995 | Boston Scientific Scimed, Inc | Longitudinally flexible expandable stent |
6355057, | Jan 14 1999 | Medtronic, Inc | Staggered endoluminal stent |
6358274, | Mar 27 1998 | EV3 PERIPHERAL, INC | Stent |
6395020, | Mar 04 1998 | Boston Scientific Scimed, Inc | Stent cell configurations |
6461380, | Jul 28 1998 | Advanced Cardiovascular Systems, Inc. | Stent configuration |
6471720, | Sep 10 1998 | Boston Scientific Scimed, Inc | Stent configurations |
6488703, | Oct 23 1998 | Boston Scientific Scimed, Inc | Helical stent design |
6520987, | Feb 25 1997 | Symbiotech Medical, INC | Expandable intravascular stent |
6533808, | Mar 27 1998 | EV3 PERIPHERAL, INC | Stent with dual support structure |
6540775, | Jun 30 2000 | CARDINAL HEALTH SWITZERLAND 515 GMBH | Ultraflexible open cell stent |
6540777, | Feb 15 2001 | Boston Scientific Scimed, Inc | Locking stent |
6613081, | Nov 14 1997 | Medtronic Vascular, Inc | Deformable scaffolding multicellular stent |
6730117, | Mar 05 1998 | Boston Scientific Scimed, Inc | Intraluminal stent |
6962603, | Mar 01 1995 | Boston Scientific Scimed, Inc | Longitudinally flexible expandable stent |
6981986, | Mar 01 1995 | Boston Scientific Scimed, Inc | Longitudinally flexible expandable stent |
7534257, | Sep 19 1996 | Medinol Ltd. | Stent with variable features to optimize support and method of making such stent |
20010056298, | |||
20020007212, | |||
20020177893, | |||
DE29701758, | |||
DE29716476, | |||
DE29816878, | |||
EP541443, | |||
EP606165, | |||
EP796597, | |||
EP821920, | |||
EP876806, | |||
EP970664, | |||
EP983753, | |||
JP64175, | |||
WO9704721, | |||
WO9714375, | |||
WO9725937, | |||
WO9732543, | |||
WO9732544, | |||
WO9733534, | |||
WO9740874, | |||
WO9745073, | |||
WO9820810, |
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